What is the equation of the tangent line of #f(x)=xsqrt(x)# that is parallel to #g(x)=1+3x#?

1 Answer
mason m
Mar 3, 2016

#y=3x-4#

Explanation:

If we want a tangent line that is parallel to #g(x)=1+3x#, we know the tangent line will have the same slope as #1+3x#, which has a slope of #3#.

To find when the slope of the tangent line of #f(x)=xsqrtx# is equal to #3#, find the derivative of #f(x)#, since the derivative tells us the slope of the tangent line at any point.

To find the derivative of #f(x)#, first simplify #f(x)#.

#f(x)=xsqrtx=x^1(x^(1/2))=x^(3/2)#

Find #f'(x)# through the power rule.

#f'(x)=3/2x^(1/2)=(3sqrtx)/2#

So, we want to find when the tangent line has a slope of #3#, or when #f'(x)=3#.

#(3sqrtx)/2=3#

#sqrtx=2#

#x=4#

We know the tangent line of #f(x)# at #x=4# has slope #3#. To find the equation of the tangent line, find the point the line will intercept on #f(x)#.

#f(4)=4sqrt4=4(2)=8#

The point #(4,8)# and slope #3# can be related as a linear equation in point-slope form:

#y-8=3(x-4)#

Which can also be written as

#y=3x-4#

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